3.4 The series R-L-C circuit of Figure 3.3a is in a sinusoidal steady state at a fre- quency of 60 Hz. V = 120 V, R=1.3 2, L=20 mH, and C=100 μF. Calculate i(t) in this circuit by solving the differential equation Equation 3.3. conv Ri(t) + L di(t) dt 1 + √ √ i(t) dt = cos(wt) (3.3) (a)
3.4 The series R-L-C circuit of Figure 3.3a is in a sinusoidal steady state at a fre- quency of 60 Hz. V = 120 V, R=1.3 2, L=20 mH, and C=100 μF. Calculate i(t) in this circuit by solving the differential equation Equation 3.3. conv Ri(t) + L di(t) dt 1 + √ √ i(t) dt = cos(wt) (3.3) (a)
Introductory Circuit Analysis (13th Edition)
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Publisher:Robert L. Boylestad
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Question
![3.4
The series R-L-C circuit of Figure 3.3a is in a sinusoidal steady state at a fre-
quency of 60 Hz. V = 120 V, R=1.3 2, L=20 mH, and C=100 μF. Calculate
i(t) in this circuit by solving the differential equation Equation 3.3.
conv
Ri(t) + L
di(t)
dt
1
+ √ √ i(t) dt = cos(wt)
(3.3)
(a)](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fe260be80-4833-4bdf-9bf9-55cceb5cb06d%2F7c4ba791-98e4-438a-9f6e-0762dc2cf72a%2Fd1f34r_processed.jpeg&w=3840&q=75)
Transcribed Image Text:3.4
The series R-L-C circuit of Figure 3.3a is in a sinusoidal steady state at a fre-
quency of 60 Hz. V = 120 V, R=1.3 2, L=20 mH, and C=100 μF. Calculate
i(t) in this circuit by solving the differential equation Equation 3.3.
conv
Ri(t) + L
di(t)
dt
1
+ √ √ i(t) dt = cos(wt)
(3.3)
(a)
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